A vacuum pump comprises: a cylindrical rotor; multiple heat insulating pins; and a stator having a cylindrical portion arranged with a predetermined gap in an outer peripheral side of the rotor and a fixing portion to be fixed to a pump base through the multiple heat insulating pins. The heat insulating pins have a lower thermal conductivity than those of the stator and the pump base, and support the fixing portion.
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1. A vacuum pump comprising:
a cylindrical rotor;
multiple heat insulating pins; and
a stator having a cylindrical portion arranged with a predetermined gap in an outer peripheral side of the rotor and a fixing portion to be fixed to a pump base through the multiple heat insulating pins,
wherein the heat insulating pins have a lower thermal conductivity than those of the stator and the pump base, and support the fixing portion in an axial direction.
8. A vacuum pump comprising:
a cylindrical rotor;
multiple heat insulating pins; and
a stator having a cylindrical portion arranged with a predetermined gap in an outer peripheral side of the rotor and a fixing portion to be fixed to a pump base through the multiple heat insulating pins,
wherein the heat insulating pins have a lower thermal conductivity than those of the stator and the pump base, and support the fixing portion, wherein
a pin hole formed at the pump base and engaging with each heat insulating pin includes
a hole-far-side small-diameter hole portion engaging with each heat insulating pin and a hole-inlet-side large-diameter hole portion configured such that a clearance is formed between the large-diameter hole portion and each heat insulating pin.
7. A vacuum pump comprising:
a cylindrical rotor;
multiple heat insulating pins; and
a stator having a cylindrical portion arranged with a predetermined gap in an outer peripheral side of the rotor and a fixing portion to be fixed to a pump base through the multiple heat insulating pins,
wherein the heat insulating pins have a lower thermal conductivity than those of the stator and the pump base, and support the fixing portion, wherein
each heat insulating pin is a stepped pin having a large-diameter portion engaging with a pin hole formed at the pump base and a small-diameter portion engaging with a pin hole formed at the fixing portion of the stator, and
the fixing portion of the stator is supported by a step portion formed at a boundary between the small-diameter portion and the large-diameter portion of the stepped pin, and positioning of the stator in the pump axial direction, a stator radial direction, and a stator circumferential direction is performed by the stepped pin.
2. The vacuum pump according to
a heater configured to heat a predetermined region of the cylindrical portion of the stator.
3. The vacuum pump according to
the heat insulating pins further perform positioning of the stator in a pump axial direction.
4. The vacuum pump according to
a seal member arranged in a clearance between the pump base and the stator and configured to prevent a gas backflow from a downstream side to an upstream side of the stator through the clearance.
6. The vacuum pump according to
the heat insulating pins are provided at predetermined angular phase intervals in the circumferential direction.
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The present invention relates to a vacuum pump.
A turbo-molecular pump is used as an exhaust pump for various semiconductor manufacturing devices. However, when gas is discharged in, e.g., an etching process, a reactive product is accumulated inside the pump. In the turbo-molecular pump, a rotor rotates at a high speed with a gap from a stator. If the reactive product is accumulated inside the pump upon etching, the clearance between the rotor and the stator is eventually filled with the reactive product, and the reactive product is fixed, and due to this, rotation operation cannot be performed in some cases. For reducing such product accumulation inside the pump, in, e.g., a vacuum pump described in Patent Literature 1 (JP-A-2015-229935), a stator 22 is, with reference to FIGS. 1 to 3 of Patent Literature 1, supported by a cylindrical heat insulating member 24, and is directly heated by a heater 280.
However, due to influence of heat transfer from the stator 22 to a base 30 through the heat insulating member 24, there is a problem that a temperature difference between a region contacting the heater 280 and a region apart from such a contact region in a circumferential direction tends to be great and product accumulation becomes noticeable in the low-temperature far region.
A vacuum pump comprises: a cylindrical rotor; multiple heat insulating pins; and a stator having a cylindrical portion arranged with a predetermined gap in an outer peripheral side of the rotor and a fixing portion to be fixed to a pump base through the multiple heat insulating pins. The heat insulating pins have a lower thermal conductivity than those of the stator and the pump base, and support the fixing portion.
According to the present invention, variation in the temperature of a cylindrical portion of a stator heated by heaters can be reduced.
Hereinafter, a mode for carrying out the present invention will be described with reference to the drawings.
A cylindrical stator 22 is provided to surround the rotor cylindrical portion 13 of the rotor 10. At the stator 22, a stator cylindrical portion 22b arranged with a predetermined gap in an outer peripheral side of the rotor cylindrical portion 13 and a flange portion 22a for fixing the stator 22 to the base 30 as a pump housing are formed. A screw groove is formed at either one of an outer peripheral surface of the rotor cylindrical portion 13 or an inner peripheral surface of the stator 22, and the rotor cylindrical portion 13 and the stator 22 form a screw groove pump. The stator cylindrical portion 22b is arranged in the base 30, and the flange portion 22a is fixed to an upper end of the base 30 with bolts 41. The stator cylindrical portion 22b is heated by heaters 28.
A rotor shaft 11 is fixed to the rotor 10. The rotor shaft 11 is magnetically levitated and supported by radial magnetic bearings MB1, MB2 and an axial magnetic bearing MB3, and is rotatably driven by a motor M. When the magnetic bearings MB1 to MB3 are not in operation, the rotor shaft 11 is supported by mechanical bearings 35a, 35b.
Note that in the embodiment, the sectional shape of the tip end contact portion of the heater 28 is in a circular shape, but is not limited to the circular shape. The tip end contact portion of the heater 28 is preferably processed into a shape in accordance with the shape of a stator outer peripheral surface to contact the stator 22 without any clearance. The tip end contact portion of the heater 28 may thermally contact the stator 22 through another member (e.g., a member which is easily deformable in accordance with contact surface asperities and has a high thermal conductivity) . Alternatively, the entirety of the heater 28 may be arranged in the pump.
An O-ring groove 31 in which an O-ring 42 is to be arranged is formed at an upper end surface (hereinafter referred to as a stator fixing surface for the sake of convenience) of the base 30 to which the stator 22 is fixed. The O-ring 42 is provided in a clearance between the base 30 and the stator 22 so that the backflow of gas from the downstream side to the upstream side of the stator 22 through a clearance as indicated by a dashed arrow G can be reliably prevented. Needless to say, in a case where influence of the backflow is acceptable, the O-ring 42 maybe omitted. Multiple pin holes 32 are formed at the stator fixing surface on the outer peripheral side with respect to the O-ring groove 31, and stepped pins 40 are each inserted into the pin holes 32. The pin hole 32 includes a small-diameter hole portion 321 on a hole far side and a large-diameter hole portion 322 on a hole inlet side.
A large-diameter portion 401 of the stepped pin 40 engages with the small-diameter hole portion 321 of the pin hole 32, and a clearance is formed between the large-diameter portion 401 and the large-diameter hole portion 322. The stator 22 is supported by step portions 403 of the stepped pins 40, and in this manner, positioning in the pump axial direction is performed. A small-diameter portion 402 of the stepped pin 40 engages with a pin hole 221 formed at the flange portion 22a of the stator 22, and for phases in a radial direction and the circumferential direction, positioning of the stator 22 is performed. Note that the pin hole 221 penetrates the flange portion 22a in
As shown in
The stepped pin 40 is a member configured to adiabatically perform positioning of the stator 22 relative to the base 30, and is made of a material having a lower thermal conductivity than those of the stator 22 and the base 30. Generally, the stator 22 and the base 30 are made of an aluminum material, and therefore, e.g., a stainless steel material or a ceramics material having a lower thermal conductivity than those of the stator 22 and the base 30 is used for the stepped pin 40. The stepped pin 40 supports, by the step portion 403, the flange portion 22a of the stator 22. The length dimension L1 of the large-diameter portion 401 is set greater than the depth dimension h1 of the pin hole 32, and therefore, a clearance is formed between the base 30 and the flange portion 22a. Moreover, a clearance is also formed between the outer peripheral surface of the stator 22 and an inner peripheral surface of the base 30. That is, the stator 22 does not contact the base 30.
On the other hand, in the present embodiment, the flange portion 22a of the stator 22 is locally supported by the multiple heat-insulating stepped pins 40, and therefore, heat transfer from the stator 22 heated by the heaters 28 to the base 30 can be sufficiently reduced. As a result, a temperature difference between the contact region R1 and the region R2 in
As shown in
(First Variation)
(Second Variation)
Note that in the second variation, positioning of the stator 22 for the phases in the radial direction and the circumferential direction is performed as shown in
When the stator 22 is fixed to the base 30 with the bolts 41 shown in
Those skilled in the art understand that the above-described exemplary embodiment and variations are specific examples of the following aspects.
Note that it is configured such that the stator 22 is heated by the heaters 28 in the above-described embodiment and variations, but the temperature of the stator 22 is higher than that of the base 30 due to heat generation accompanied by gas discharge even in a configuration without the heaters 28. Thus, it is configured such that the stator 22 is supported by heat insulating pins as in the above-described embodiment. With this configuration, uniformity of the temperature distribution of the stator 22 can be improved.
[1] A vacuum pump comprises: a cylindrical rotor; multiple heat insulating pins; and a stator having a cylindrical portion arranged with a predetermined gap in an outer peripheral side of the rotor and a fixing portion to be fixed to a pump base through the multiple heat insulating pins. The heat insulating pins have a lower thermal conductivity than those of the stator and the pump base, and support the fixing portion.
For example, even in a case where the temperature of the stator 22 reaches a temperature higher than that of the base 30 due to heat generation accompanied by gas discharge, the flange portion 22a of the stator 22 is supported by the stepped pins 40 as the heat insulating pins, and therefore, heat transfer from the stator 22 to the base 30 can be sufficiently reduced. Thus, the uniformity of the temperature distribution of the stator 22 in the circumferential direction can be improved.
[2] The vacuum pump further comprises: a heater configured to heat a predetermined region of the cylindrical portion of the stator.
For example, as shown in
[3] The heat insulating pins further perform positioning of the stator in a pump axial direction.
[4] Each heat insulating pin is a stepped pin having a large-diameter portion engaging with a pin hole formed at the pump base and a small-diameter portion engaging with a pin hole formed at the fixing portion of the stator, and the fixing portion of the stator is supported by a step portion formed at a boundary between the small-diameter portion and the large-diameter portion of the stepped pin, and positioning of the stator in the pump axial direction, a stator radial direction, and a stator circumferential direction is performed by the stepped pin.
With use of the stepped pins 40 as shown in
[5] A pin hole formed at the pump base and engaging with each heat insulating pin includes a hole-far-side small-diameter hole portion engaging with each heat insulating pin and a hole-inlet-side large-diameter hole portion configured such that a clearance is formed between the large-diameter hole portion and each heat insulating pin.
For example, as shown in
[6] The vacuum pump, further comprises: a seal member arranged in a clearance between the pump base and the stator and configured to prevent a gas backflow from a downstream side to an upstream side of the stator through the clearance.
For example, as shown in
[7] The stator does not contact the pump base.
[8] The heat insulating pins are provided at predetermined angular phase intervals in the circumferential direction.
Note that as shown in
Various embodiments and variations have been described above, but the present invention is not limited to the contents of these embodiments and variations. Other aspects conceivable within the scope of the technical idea of the present invention are also included in the scope of the present invention. For example, in the above-described embodiments, the turbo-molecular pump has been described as an example, but the present invention can be also applied to a vacuum pump including only a screw groove pump having a stator and a rotor cylindrical portion.
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